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A Novel Glycoside Hydrolase Family 113 Endo-β-14-Mannanase from Alicyclobacillus sp. Strain A4 and Insight into the Substrate Recognition and Catalytic Mechanism of This Family

机译:来自脂环芽孢杆菌属的新型糖苷水解酶家族113内-β-14-甘露聚糖酶。菌株A4以及对该家族的底物识别和催化机理的洞察

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摘要

Few members of glycoside hydrolase (GH) family 113 have been characterized, and information on substrate recognition by and the catalytic mechanism of this family is extremely limited. In the present study, a novel endo-β-1,4-mannanase of GH 113, Man113A, was identified in thermoacidophilic Alicyclobacillus sp. strain A4 and found to exhibit both hydrolytic and transglycosylation activities. The enzyme had a broad substrate spectrum, showed higher activities on glucomannan than on galactomannan, and released mannobiose and mannotriose as the main hydrolysis products after an extended incubation. Compared to the only functionally characterized and structure-resolved counterpart Alicyclobacillus acidocaldarius ManA (AaManA) of GH 113, Man113A showed much higher catalytic efficiency on mannooligosaccharides, in the order mannohexaose ≈ mannopentaose > mannotetraose > mannotriose, and required at least four sugar units for efficient catalysis. Homology modeling, molecular docking analysis, and site-directed mutagenesis revealed the vital roles of eight residues (Trp13, Asn90, Trp96, Arg97, Tyr196, Trp274, Tyr292, and Cys143) related to substrate recognition by and catalytic mechanism of GH 113. Comparison of the binding pockets and key residues of β-mannanases of different families indicated that members of GH 113 and GH 5 have more residues serving as stacking platforms to support −4 to −1 subsites than those of GH 26 and that the residues preceding the acid/base catalyst are quite different. Taken as a whole, this study elucidates substrate recognition by and the catalytic mechanism of GH 113 β-mannanases and distinguishes them from counterparts of other families.
机译:糖苷水解酶(GH)家族113的成员很少,并且有关该家族的底物识别信息和催化机理的信息极为有限。在本研究中,在嗜热嗜酸性脂环酸杆菌中鉴定了GH 113的新型内切β-1,4-甘露聚糖酶Man113A。菌株A4,发现具有水解和转糖基活性。该酶具有较宽的底物谱,对葡甘露聚糖的活性高于对半乳甘露聚糖的活性,并在延长的温育后释放出甘露二糖和甘露三糖作为主要水解产物。与GH 113的唯一具有功能特征和结构解析性的酸酸脂环酸芽孢杆菌ManA(AaManA)相比,Man113A对甘露寡糖具有更高的催化效率,其排列顺序为甘露六糖≈甘露五糖>甘露糖>甘露三糖,并且至少需要四个糖单元才能有效催化。同源性建模,分子对接分析和定点诱变揭示了与GH 113的底物识别和催化机理有关的8个残基(Trp13,Asn90,Trp96,Arg97,Tyr196,Trp274,Tyr292和Cys143)的重要作用。比较不同家族的β-甘露聚糖酶的结合口袋和关键残基的研究表明,GH 113和GH 5的成员具有比GH 26更多的残基作为堆叠平台以支持-4至-1个亚位点,并且该残基位于酸之前/碱催化剂是完全不同的。总体而言,本研究阐明了GH 113β-甘露聚糖酶的底物识别和催化机理,并将其与其他家族的对应物区分开。

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